Chinmayee Nayak | Additive manufacturing Award | Best Researcher Award

Dr. Chinmayee Nayak | Additive manufacturing Award | Best Researcher Award

Dr. Chinmayee Nayak, University of Turku, India

Dr. Chinmayee Nayak is a dedicated materials scientist specializing in tribology, corrosion, polymer composites, and additive manufacturing 🌟. She earned her Ph.D. from IIT Kanpur 🏫, contributing six first-authored research articles, a patent, and a book chapter 📚. Currently, she is a post-doctoral researcher at the University of Turku, managing projects like DREAMS and GREEN-BAT 🚀. With extensive experience in lab management and various advanced scientific techniques 🧪, Dr. Nayak is also a prolific author with numerous publications and a mentor to aspiring scientists. Her accolades include the Best Oral Presentation Award at APM 2021 🏆.

 

Publication profile

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Education 🎓

Ph.D. in Materials Science and Engineering from IIT Kanpur, India, with six first-authored research articles, one Indian patent, and a book chapter. M.Tech. in Materials Science and Technology from IIT (BHU), Varanasi, India. B.Tech. in Polymer Engineering from CIPET, Bhubaneswar, India.

Professional Experience 👩‍🏫

Project Scientist at IIT Kanpur, Quality Control Engineer at TATA Nano Assembly line, and Teaching Assistant at IIT Kanpur.

Awards and Honours 🏆

Recipient of various awards including the Best Oral Presentation Award at the APM conference and Proficiency Academic Award from CIPET.

Research Focus 🔬

Chinmayee Nayak’s research focuses on the development and characterization of advanced materials for biomedical applications, specifically in orthopedic and tribological contexts. Her work includes studying hydroxyapatite composites, the effects of reinforcements and gamma irradiation on ultra-high molecular weight polyethylene (UHMWPE), and the tribological properties of various materials. Additionally, she explores the biocompatibility and wear resistance of novel materials such as Nickel-Free stainless steel and the application of laser-based powder bed fusion techniques in manufacturing. Her research aims to enhance the performance and longevity of biomaterials used in medical implants and other critical applications.

 

Publications by Chinmayee Nayak 📚

Seol-HaJeong | Robotic 3D Printing Award | Best Researcher Award

Dr. Seol-HaJeong | Robotic 3D Printing Award | Best Researcher Award

Dr. Seol-HaJeong, Harvard Medical School, United States

Professor Hyoun-Ee Kim is a distinguished researcher in the field of materials science and engineering, particularly renowned for his expertise in biomaterials and tissue engineering. With a prolific career spanning various prestigious institutions, including Seoul National University, he has made significant contributions to the development of advanced hydrogels and nanocomposite materials, enhancing biostability and mechanical properties for biomedical applications. His pioneering work in the synthesis and characterization of innovative biomaterials has earned him international recognition, reflected in numerous awards, patents, and high-impact publications. 🏆🔬🧬

 

Publication Profile 

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Education

 

Seol-Ha Jeong’s academic journey reflects a relentless pursuit of excellence in materials science and engineering, with a focus on biomedical applications. Beginning with a Bachelor of Science degree from Seoul National University (SNU), Jeong delved into research early on. Through her Master’s and Ph.D. studies under the mentorship of Prof. Hyoun-Ee Kim, she explored the synthesis and applications of hyaluronic acid-based nanocomposite hydrogels, earning accolades for her outstanding thesis. This foundation led her to various roles as a postdoctoral researcher and research professor at SNU, before venturing to Harvard Medical School’s Brigham and Women’s Hospital. Her current position as a senior researcher at SNU’s Bio-Max Institute underscores her commitment to advancing bioengineering and materials science. 🎓🔬🧬

 

Research Experiences

 

Seol-Ha Jeong’s research endeavors illuminate a profound commitment to advancing biomedical engineering across prestigious institutions worldwide. At Harvard Medical School’s Brigham and Women’s Hospital, her current role as a postdoctoral research fellow under Prof. Su Ryon Shin is marked by groundbreaking projects, including the integration of visual guidance systems and robot arms for in-situ bioprinting. She actively contributes to the preparation of R01 NIH grants and explores innovative avenues such as in-situ printed wound patches and oxygenated mesenchymal stem cell spheroids for bone regeneration. Her previous stints at Seoul National University involved pioneering work in diverse areas, from wireless ionic devices for photodynamic therapy to developing hyaluronic acid-based nanocomposite hydrogels for wound healing. Jeong’s trajectory exemplifies a fusion of scientific rigor and visionary pursuit, propelling the frontier of bioengineering. 🔬⚙️🧬

 

Awards

 

Seol-Ha Jeong’s illustrious academic journey is adorned with an array of accolades and scholarships, underscoring her exceptional prowess in the field of materials science and engineering. Noteworthy among her accolades are the Outstanding Paper Award from the LG High Future Cosmetic Support Foundation and the prestigious Outstanding Thesis Award from Seoul National University. Her scholarly achievements extend globally, earning her recognition such as the Honorable Mention STAR Award from the Society for Biomaterials in Minneapolis. Additionally, Jeong’s dedication to excellence is further evidenced by an array of scholarships, including those from esteemed institutions like Dentium and SNU, affirming her commitment to advancing scientific frontiers. 🎓🏆🔬

 

Research Focus

Seol-Ha Jeong’s research focus spans several critical areas in biomaterials and tissue engineering. She specializes in enhancing the stability and functionality of hydrogels, such as hyaluronic acid-based hydrogels, through innovative approaches like tannic acid treatment and in-situ precipitation processes. Furthermore, her work extends to the development of advanced wound healing technologies, including ionic patches assisted by triboelectric nanogenerators and bioactive composite hydrogel dressings. Through her contributions, she aims to address challenges in wound healing, tissue regeneration, and biomedical applications, paving the way for novel therapeutic interventions and improved patient outcomes. 🧬🔬🩺